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Vibration control of nonlinear rotating beam using piezoelectric actuator and sliding mode approach

机译:基于压电致动器和滑模法的非线性旋转梁振动控制

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摘要

In this research, we develop a general methodology for the vibration control of a nonlinear rotating beam. The dynamic model of a rotating Euler-Bernoulli beam integrated with a piezoelectric actuator is formulated. An integral sliding mode approach is proposed for the vibration control of the system with nonlinear coupling effect between the hub rotation and the beam transverse vibration. The vibration control is achieved by using the piezoelectric actuator only, whereas the motor torque is treated as a time-dependent external input. In the sliding mode control design, the sliding manifold is constructed using only the partial states of the system that are associated with the beam vibration. Particularly, utilizing the internal dynamics analysis, the nonlinear coupling effect of the rigid-body rotation and the beam transverse vibration is decoupled, and the robust stability of the system is guaranteed. This integral sliding mode control is continuous in nature, which can alleviate or avoid the chattering problem. A series of simulation studies demonstrate that the proposed control method can effectively suppress the beam vibration induced by the hub rotation and the external disturbance.
机译:在这项研究中,我们开发了一种用于控制非线性旋转梁振动的通用方法。建立了集成有压电致动器的旋转欧拉-伯努利梁的动力学模型。提出了一种整体滑模方法,用于在轮毂旋转和梁横向振动之间具有非线性耦合作用的系统振动控制。振动控制仅通过使用压电执行器来实现,而电动机转矩则被视为与时间有关的外部输入。在滑模控制设计中,仅使用与梁振动相关的系统部分状态来构造滑动歧管。特别地,利用内部动力学分析,使刚体旋转和梁横向振动的非线性耦合效应解耦,并保证了系统的鲁棒稳定性。这种整体式滑模控制本质上是连续的,可以减轻或避免颤动问题。一系列的仿真研究表明,所提出的控制方法可以有效地抑制由于轮毂旋转和外部干扰引起的梁振动。

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